System Design Low Pressure Direct Injection (LPDI)
Liebherr's H2 injection system is designed to provide extremely fast and accurate pressure control, regardless of fuel tank position, machine size, layout or engine installation. This design provides a two-stage pressure control. While the first stage initially stabilises the variable pressure from the fuel tank, the second stage fine-tunes said pressure. The injection pressure is controlled by activating the gas-metering valve via the electronic control unit (ECU). The ECU controls the gas-metering valve by a closed-loop feed-forward controller. Custom-developed hydrogen-specific software modules can be integrated into third-party application software and/ or control units.
"The H2-DI system is designed to operate without an electronic pressure release valve. The idea behind it is to keep the system as simple as possible, whilst avoiding the release of any hydrogen gas into the atmosphere during operation", Richard Pirkl summarises.
The injector: a key component
"The injector is the most sophisticated and, at the same time, performance-determining component of the hydrogen fuel system", explains Pirkl. The overall dimensions of Liebherr's H2 LPDI injector are very similar to those of diesel injectors for heavy-duty commercial vehicle engines. In particular, the critical maximum outer diameter is within the same range as for diesel injectors.
In the current sample stage, the injector can be equipped with various hydrogen connections by means of a screw-in insert. Two basic variants of the injector head (radial and axial H2 inlet) allow for different installation situations. To ensure the correct spray pattern and jet direction, the injector nozzle is equipped with a diffuser cap. "It is interchangeable in the sample stage and allows cost-effective testing of different variations to define the best configuration. Using a screw solution, the diffuser cap can be easily replaced", says Richard Pirkl.
The injector is opened and closed via a needle that is directly activated by the magnet. To meet the target housing dimensions, the magnet grew thoroughly in size. The challenges thereby were to achieve sufficient magnetic force for direct activation, while matching the critical external dimensions in the magnet area to the engine manufacturer's requirements. Multiple simulations of different magnet concepts, materials and installation situations accompanied the process. The magnet force is now tuned in such a way that, on the one hand, proper opening of the injector is possible and, on the other hand, the closing delay is reduced to a minimum.
"An additional key development goal was to control the hydrogen injector with the existing control units of diesel engines and with the current standard profiles already known from these applications", Pirkl summarises.